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用于区分天然与非天然蛋白质构象的软能量函数和通用进化方法。

Soft energy function and generic evolutionary method for discriminating native from nonnative protein conformations.

作者信息

Chiu Yi-yuan, Hwang Jenn-kang, Yang Jinn-moon

机构信息

Institute of Bioinformatics, National Chiao Tung University, Hsinchu 30050, Taiwan.

出版信息

J Comput Chem. 2008 Jul 15;29(9):1364-73. doi: 10.1002/jcc.20897.

Abstract

We have developed a soft energy function, termed GEMSCORE, for the protein structure prediction, which is one of emergent issues in the computational biology. The GEMSORE consists of the van der Waals, the hydrogen-bonding potential and the solvent potential with 12 parameters which are optimized by using a generic evolutionary method. The GEMSCORE is able to successfully identify 86 native proteins among 96 target proteins on six decoy sets from more 70,000 near-native structures. For these six benchmark datasets, the predictive performance of the GEMSCORE, based on native structure ranking and Z-scores, was superior to eight other energy functions. Our method is based solely on a simple and linear function and thus is considerably faster than other methods that rely on the additional complex calculations. In addition, the GEMSCORE recognized 17 and 2 native structures as the first and the second rank, respectively, among 21 targets in CASP6 (Critical Assessment of Techniques for Protein Structure Prediction). These results suggest that the GEMSCORE is fast and performs well to discriminate between native and nonnative structures from thousands of protein structure candidates. We believe that GEMSCORE is robust and should be a useful energy function for the protein structure prediction.

摘要

我们开发了一种名为GEMSCORE的软能量函数,用于蛋白质结构预测,这是计算生物学中一个新出现的问题。GEMSORE由范德华力、氢键势和溶剂势组成,有12个参数,通过使用一种通用的进化方法进行优化。GEMSCORE能够在来自70000多个近天然结构的六个诱饵集的96个目标蛋白中成功识别出86个天然蛋白。对于这六个基准数据集,基于天然结构排名和Z分数,GEMSCORE的预测性能优于其他八个能量函数。我们的方法仅基于一个简单的线性函数,因此比其他依赖于额外复杂计算的方法要快得多。此外,在蛋白质结构预测技术关键评估(CASP6)的21个目标中,GEMSCORE分别将17个和2个天然结构识别为第一和第二排名。这些结果表明,GEMSCORE速度快,并且在从数千个蛋白质结构候选物中区分天然和非天然结构方面表现良好。我们相信GEMSCORE是稳健的,应该是一种用于蛋白质结构预测的有用能量函数。

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